US12108196B2 - Frame correction method and projector using the same - Google Patents
Frame correction method and projector using the same Download PDFInfo
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- US12108196B2 US12108196B2 US18/105,188 US202318105188A US12108196B2 US 12108196 B2 US12108196 B2 US 12108196B2 US 202318105188 A US202318105188 A US 202318105188A US 12108196 B2 US12108196 B2 US 12108196B2
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- 238000012937 correction Methods 0.000 title claims abstract description 110
- 238000000034 method Methods 0.000 title claims abstract description 46
- 230000004044 response Effects 0.000 claims abstract description 35
- 230000008569 process Effects 0.000 description 16
- 239000013256 coordination polymer Substances 0.000 description 12
- 238000010586 diagram Methods 0.000 description 6
- 230000008859 change Effects 0.000 description 5
- 238000013459 approach Methods 0.000 description 4
- 238000012545 processing Methods 0.000 description 4
- 230000008901 benefit Effects 0.000 description 1
- 238000007796 conventional method Methods 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
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- 238000003672 processing method Methods 0.000 description 1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N9/00—Details of colour television systems
- H04N9/12—Picture reproducers
- H04N9/31—Projection devices for colour picture display, e.g. using electronic spatial light modulators [ESLM]
- H04N9/3179—Video signal processing therefor
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N9/00—Details of colour television systems
- H04N9/12—Picture reproducers
- H04N9/31—Projection devices for colour picture display, e.g. using electronic spatial light modulators [ESLM]
- H04N9/3179—Video signal processing therefor
- H04N9/3185—Geometric adjustment, e.g. keystone or convergence
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N9/00—Details of colour television systems
- H04N9/64—Circuits for processing colour signals
- H04N9/646—Circuits for processing colour signals for image enhancement, e.g. vertical detail restoration, cross-colour elimination, contour correction, chrominance trapping filters
Definitions
- the processor 120 adds an added one of the first added-boundary contour points between the first contour-adjusted one and the adjacent original-boundary contour point, wherein the adjacent original-boundary contour point is closest to the first contour-adjusted one in an added direction, and the added direction is perpendicular to the boundary contour adjustment direction.
- the processor 120 adds the first added-boundary contour point (the added one) AP 1 , 1 (the subscript “1” indicates that “the first” boundary contour adjustment, and so on) between the original-boundary contour point AP 1 ,0 and the adjacent original-boundary contour point AP 7 ,0 , wherein the adjacent original-boundary contour point AP 7 ,0 is closest to the original-boundary contour point AP 1 ,0 in Y axis (the added direction).
- the boundary contour adjustment direction could be parallel to one of the X axis and the Y axis.
- the processor 120 could add the first added-boundary contour point by using the image processing technology.
- the processor 120 could set the coordinate value of the first added-boundary contour point, and the projection module 110 could project the first added-boundary contour point on the correction frame M according to the set coordinate value.
- the method of adding image points described herein is the same as or similar to that of the first added-boundary contour point, and the similarities will not be repeated here.
- the coordinate of the first added-boundary contour point AP 1 , 1 (the added one) is equal to the average (that is, the median value) of the original-boundary contour point AP 1 ,0 (the first contour-adjusted one) and the adjacent original-boundary contour point AP 7 ,0
- the coordinate of the first added-boundary contour point AP 1 , 1 (the added one) is equal to the average (that is, the median value) of the original-boundary contour point AP 1 ,0 (the first contour-adjusted one) and the adjacent original-boundary contour point AP 7 ,0 .
- the processor 120 adds the rest ones AP 2 , 1 to AP 4 , 1 of the added-boundary contour points AP 1 , 1 to AP 4 , 1 , wherein the added-boundary contour points AP 1 , 1 to AP 4 , 1 are symmetrically disposed relative to the first center line AX 1 and the second center line AX 2 .
- the processor 120 adds the rest ones AP 2 , 1 to AP 4 , 1 of the added-boundary contour points AP 1 , 1 to AP 4 , 1 by using way of the four-quadrant symmetry and the image processing technology, wherein all first added-boundary contour points AP 1 , 1 to AP 4 , 1 are symmetrically disposed relative to the first center line AX 1 and the second center line AX 2 .
- the automatic position adjustment step (as shown in FIG. 3 B ) of the aforementioned original-boundary contour points AP 2 ,0 to AP 4 ,0 and the automatic adding step (as shown in FIG. 3 C ) of the first added-boundary contour points AP 1 , 1 to AP 4 , 1 could be performed simultaneously or sequentially.
- the processor 120 is further configured to: (1). establish a number of first added-boundary contour point lines, wherein each first added-boundary contour point line connects the opposite two added-boundary contour points; (2). establish a number of first original-boundary contour point lines, wherein each first original-boundary contour point line connects the opposite two original-boundary contour points; (3). establish a number of the first open correction points at intersections of the first added-boundary contour point lines and the first original-boundary contour point lines.
- the processor 120 establishes a number of the first added-boundary contour point lines C 11 ,1 -C 14 ,1 (the subscript “1” indicates the boundary contour adjustment for the first time, and so on), wherein the first added-boundary contour point line C 11 ,1 connects the opposite two first added-boundary contour points AP 1 ,1 and AP 2 , 1 , the first added-boundary contour point line C 12 ,1 connects the opposite two first added-boundary contour points AP 3 ,1 and AP 4 , 1 , the first added-boundary contour point line C 13 ,1 connects the opposite two first added-boundary contour points AP 1 ,1 and AP 3 , 1 , the first added-boundary contour point line C 14 ,1 connects the opposite two first added-boundary contour points AP 2 ,1 and AP 4 , 1 .
- the processor 120 establishes a number of the first original-boundary contour point lines C 21 , 1 to C 24 , 1 , wherein the first original-boundary contour point line C 21 , 1 connects the opposite two original-boundary contour points AP 1 ,0 and AP 3 ,0 , the first original-boundary contour point line C 22 , 1 connects the opposite two original-boundary contour points AP 2 ,0 and AP 4 ,0 , the first original-boundary contour point line C 23 , 1 connects the opposite two original-boundary contour points AP 3 ,0 and AP 6 ,0 , and the first original-boundary contour point line C 24 , 1 connects the opposite two original-boundary contour points AP 7 ,0 and AP 8 ,0 .
- the first added-boundary contour point lines and the first original-boundary contour point lines could be displayed on the correction frame M, or could not be displayed. As shown in FIG. 3 D , each original-boundary contour point line connects the opposite two original-boundary contour points either along the first center line AX 1 or along the second center line AX 2 . In addition, all of the first added-boundary contour point lines and the first original-boundary contour point lines could connect all of the original-boundary contour points and the added-boundary contour points. In an embodiment, the adding step of the first added-boundary contour point lines and the adding step of the first original-boundary contour point lines could be completed simultaneously or sequentially.
- the processor 120 establish a number of the first open correction points CP 1 , 1 to CP 14 , 1 at the intersections of the first added-boundary contour point lines C 11 , 1 to C 14 , 1 and the first original-boundary contour point lines C 21 , 1 to C 24 , 1 , wherein the first open correction points CP 1 , 1 to CP 11 , 1 are symmetrically disposed relative to the first centerline AX 1 and the second centerline AX 2 .
- the first open correction points CP 1 , 1 to CP 11 , 1 could be displayed on the correction frame M.
- two of the adding steps of the first added-boundary contour point lines, the adding step of the first original-boundary contour point lines and the adding step of the first open correction points could be performed simultaneously or sequentially.
- the user could further perform position adjustment for the n th contour-adjusted one of the original-boundary contour points and the n th added-boundary contour point to the (n ⁇ 1) th added-boundary contour point, and the processor 120 , in response to the position adjustment of the n th contour-adjusted one, automatically performs the aforementioned “four-quadrant symmetry” and “automatic expansion” by using could use the same method described above.
- the aforementioned value of n could range between 2 and N, wherein n is a positive integer, and N is a positive integer equal to or greater than 2.
- the embodiment of the present invention does not limit the value of N, which could be a positive integer ranging between 2 and 100, or even more, and its value depends on the time number of adjustments made by the user.
- step S 190 the process proceeds directly to step S 190 from step S 130 .
- the user could input an end command of the boundary contour adjustment through the user interface.
- the processor 120 in response to the end command of the boundary contour adjustment, makes the process proceed to step S 190 . If the user wants to continue to adjust the boundary contour for the second time, the process proceeds to step S 140 .
- step S 150 in the 2 nd boundary contour adjustment, the processor 120 , in response to the position adjustment of a second contour-adjusted one of the original-boundary contour points AP 1 ,0 to AP 8 ,0 and the first added-boundary contour points AP 1 , 1 to AP 4 , 1 , accordingly adjusts the position of at least one symmetric one of the original-boundary contour points AP 1 ,0 to AP 8 ,0 and the first added-boundary contour points AP 1 to AP 4 , 1 , wherein the at least one symmetric one and the second contour-adjusted one are symmetrically disposed (“four-quadrant symmetry”).
- the position adjustment of the second contour-adjusted one is, for example, done manually by the user, which is similar to or the same as the aforementioned position adjustment of the first contour-adjusted one, and similarities will not be repeated here.
- the original-boundary contour points AP 2 ,0 to AP 4 ,0 and the original-boundary contour point AP 1 , 0 which are symmetric belong to the same symmetrical group.
- the processor 120 automatically adjusts the positions of the original-boundary contour points AP 2 ,0 to AP 4 ,0 , so that the adjusted original-boundary contour points AP 1 ,0 to AP 4 ,0 are still symmetrically disposed in position.
- step S 160 in the 2 nd boundary contour adjustment, the processor 120 , in response to the 2 nd boundary contour adjustment, adds a number of the second added-boundary contour points and a number of the second open correction points (“automatic expansion”).
- the processor 120 adds an added one of second added-boundary contour points between the second contour-adjusted one and an adjacent one of the AP 1 ,0 to AP 8 ,0 and the first added-boundary contour points AP 1 , 1 to AP 4 , 1 , wherein the adjacent original-boundary contour point is the original-boundary contour point that is closest to the second contour-adjusted one in the added direction, and the added direction and the boundary contour adjustment direction are substantially perpendicular to each other.
- the processor 120 adds a second added-boundary contour point AP 1 , 2 (the added one) between the original-boundary contour point AP 1 ,0 (the second contour-adjusted one) and the original-boundary contour point AP 5 ,0 (the adjacent one), and adds a second added-boundary contour point AP 5 , 2 (the added one) between the original-boundary contour point AP 1 ,0 and the first added-boundary contour point AP 1 , 1 (the adjacent one), wherein the adjacent original-boundary contour point AP 5 ,0 is closest to the original-boundary contour point AP 1 ,0 in X axis (the added direction) and located at an side of the original-bound
- the processor 120 adds two second added-boundary contour points AP 1 , 2 and AP 5 , 2 respectively at two opposite sides of the original-boundary contour point AP 1 ,0 (the second contour-adjusted one) in the added direction.
- the processor 120 adds a contour point (the added one) in the added direction perpendicular to the boundary contour adjustment direction.
- the processor 120 adds the rest ones AP 2 , 2 to AP 8 , 2 of the second added-boundary contour points AP 1 , 2 to AP 8 , 2 , wherein the second added-boundary contour points AP 1 , 2 to AP 8 , 2 are symmetrically disposed relative to the first centerline AX 1 and the second centerline AX 2 .
- the processor 120 adds the rest ones AP 2 , 2 to AP 8 , 2 of the second added-boundary contour points AP 1 , 2 to AP 8 , 2 by using way of the four-quadrant symmetry and the image processing technology, wherein all second added-boundary contour points AP 1 , 2 to AP 8 , 2 are symmetrically disposed relative to the first center line AX 1 and the second center line AX 2 .
- the automatic position adjustment step (as shown in FIG. 3 F ) of the aforementioned original-boundary contour points AP 2 ,0 to AP 4 ,0 and the automatic adding step (as shown in FIG. 3 F ) of the second added-boundary contour points AP 1 , 2 to AP 8 , 2 could be performed simultaneously or sequentially.
- the processor 120 is further configured to: (1) establish a number of the n th added-boundary contour point lines, wherein each n th added-boundary contour point line connects opposite two n th added-boundary contour points; (2). establish a number of the n th open correction points at the intersections of the n th added-boundary contour point lines and the (n ⁇ 1) th added-boundary contour point lines and/or the (n ⁇ 1) th original-boundary contour point lines, wherein the added-boundary contour point lines are perpendicular to the original-boundary contour point lines.
- the second open correction points could be established at the intersections of the first original-boundary contour point lines and/or the (n ⁇ 1) th added-boundary contour point lines that are intersected with all n th added-boundary contour point lines.
- the processor 120 establishes a number of the second added-boundary contour point lines C 11 , 2 to C 18 , 2 , wherein the second added-boundary contour point line C 11 , 2 connects the opposite two second added-boundary contour points AP 1 , 2 and AP 3 , 2 , the second added-boundary contour point line C 12 , 2 connects the opposite two second added-boundary contour points AP 2 , 2 and AP 4 , 2 , the second added-boundary contour point line C 13 , 2 connects the opposite two second added-boundary contour points AP 5 , 2 and AP 7 , 2 , the second added-boundary contour point line C 14 , 2 connects the opposite two second added-boundary contour points AP 6 , 2 and AP 8 , 2 , the second added-boundary contour point line C 15 , 2 connects the opposite two second added-boundary contour points AP 5 , 2 and AP 6 , 2 , the second added-boundary contour point line C 15 , 2 connect
- the processor 120 establishes a number of the second open correction points (unlabeled, drawn as hollow circles) at intersections of the second added-boundary contour point lines C 11 , 2 to C 18 , 2 and the first added-boundary contour point lines C 11 , 1 to C 12 , 1 , and establishes a number of the second open correction points (unlabeled, drawn as hollow circles) at intersections of the second added-boundary contour point lines C 11 , 2 to C 18 , 2 and the original-boundary contour point line C 24 , 1 .
- the second open correction points are symmetrically disposed relative to the first center line AX 1 and the second center line AX 2 (“four-quadrant symmetry”).
- the processor 120 in response to the position adjustment of a third contour-adjusted one (for example, the second added-boundary contour point AP 1 , 1 ) of the original-boundary contour points AP 1 ,0 to AP 8 ,0 , the first added-boundary contour points AP 1 , 1 to AP 4 , 1 and the second added-boundary contour points AP 1 , 2 to AP 8 , 2 , accordingly adjusts the position of at least one symmetric one (for example, the second added-boundary contour points AP 2 , 2 , AP 3 , 2 and AP 4 , 2 ) of the original-boundary contour points AP 1 ,0 to AP 8 ,0 , the first added-boundary contour points AP 1 , 1 to AP 4 , 1 and the second added-boundary contour points AP 1 , 2 to AP 4 , 2 by using the four-quadrant
- the processor 120 in response to the position adjustment of the third contour-adjusted one (for example, the added-boundary contour point AP 1 , 2 ), adds a number of the third added-boundary contour points (for example, the third added-boundary contour points AP 1 , 3 to AP 8 , 3 ) and a number of the third open correction points (unlabeled, drawn as hollow circles) by using the method of “automatic expansion”.
- the intersection of the grid-lines in FIG. 3 G represents a coordinate of one pixel, wherein the coordinate of the added-boundary contour point is based on the intersection of the grid-lines.
- the processor 120 in response to the position adjustment of the n th contour-adjusted one of a number of the original-boundary contour points and a number of the first added-boundary contour points to a number of the (n ⁇ 1) th added-boundary contour points, correspondingly adjusts at least one symmetric one of the original-boundary contour points and a number of the first added-boundary contour points to a number of the (n ⁇ 1) th added-boundary contour points by using the “four-quadrant symmetry”, wherein at least one symmetric one and the n th contour-adjusted one are symmetrically disposed.
- the processor 120 in response to the position adjustment of the n th contour-adjusted one of a number of the original-boundary contour points and a number of the first added-boundary contour points to a number of the (n ⁇ 1) th added-boundary contour points, adds a number of the n th added-boundary contour points and a number of the n th open correction points by “automatic expansion”.
- n th boundary contour adjustment in response to the position adjustment of the n th contour-adjusted one, at least two of “automatic position adjustment of at least one symmetrical one”, “the adding of a number of the n th added-boundary contour points” and “adding of a number of the n th open correction points” could be completed simultaneously or not at the same time.
- the n th added-boundary contour points in the n th boundary contour adjustment has been established (existed) during the first boundary contour adjustment to the (n ⁇ 1) th boundary contour adjustment, the establishing step of n th added-boundary contour point could be omitted.
- a linking relationship between a released one of a number of the original-boundary contour points and a number of the first added-boundary contour points to a number of the n th added-boundary contour points and the others of a number of the original-boundary contour points and a number of the first added-boundary contour points to a number of the n th added-boundary contour points could be released.
- the processor 120 in response to the secondary position adjustment of the released one by the user, releases the linking relationship between the released one and the others. After the linking relationship is released, the released one does not move/change with other contour points and/or other contour points do not move/change with the released one.
- the processor 120 releases the linking relationship between the added-boundary contour point AP 1 , 1 (the released one) and other contour points (all contour points rather than the released one).
- step S 190 after the adjustment of the contour points is completed, the processor 120 could generate (or establish) a contour boundary line B 1 , wherein the contour boundary line B 1 connects or approaches any one of all boundary contour points, such as anyone of original-boundary contour points AP 1 ,0 to AP 8 ,0 and the first added-boundary contour points AP 1 , 1 to AP 4 , 1 to the n th added-boundary contour points (for example, AP 1 , 2 to AP 8 , 2 and AP 1 , 3 to AP 8 , 3 ).
- the contour boundary line B 1 could be displayed on the correction frame M.
- the processor 120 could generate the contour boundary line B 1 by using, for example, a straight-line compensation method and/or a curved-line compensation method.
- the contour boundary line B 1 is a straight line.
- the contour boundary line B 1 is a curved line.
- the contour boundary line B 1 could be a combination of a straight line and a curved line. For example, two adjacent contour points are connected by a straight line, while another two adjacent contour points are connected by a curved line.
- the user could adjust the position of the open correction points within the contour boundary line B 1 (hereinafter referred to as “local contour adjustment”) to adjust the local contour within the contour boundary line B 1 (or fine-tuning).
- step S 192 in response to the position adjustment of the first local adjusted one (the m th local adjusted one) of a number of the first open correction points to the n th open correction points in a local adjustment direction, the processor 120 correspondingly adjusts the position of at least one linking one of a number of the first open correction points to the n th open correction points in the local adjustment direction, wherein the first local adjusted one and the at least one linking one are distributed in a distribution direction, the local adjustment direction is perpendicular to the distribution direction.
- the position of the m th local adjusted one changes, the position of the linking one changes accordingly.
- the processor 120 in response to the position adjustment of the first open correction points CP 7 , 1 in the X-axis, correspondingly adjusts the positions of six open correction points (linking ones) on the first original-boundary contour point line C 21 , 1 (the first original-boundary contour point line C 21 , 1 is shown in FIG. 3 E ), wherein the linking ones are distributed in the Y-axis (perpendicular direction) (before the open correction points being correspondingly moved, as shown in FIG. 3 I- 1 ).
- the processor 120 in response to the position adjustment of the first open correction points CP 7 , 1 in the X-axis, correspondingly adjusts the positions of six open correction points (linking ones) on the first original-boundary contour point line C 21 , 1 (the first original-boundary contour point line C 21 , 1 is shown in FIG. 3 E ), wherein the linking ones are distributed in the Y-axis (perpendicular direction) (before the open correction points being correspondingly moved, as shown in FIG.
- the first local adjusted one and the linking ones are distributed in a line segment S 1 , wherein the line segment S 1 is, for example, along a straight line, a curved line or a combination thereof, wherein the curved line is, for example, a conic curved line, parabolic or circular curved line.
- the position adjustment of the first local adjusted one is performed manually by the user, for example.
- the user could operate the aforementioned user interface to adjust the position of the first local adjusted one.
- the processor 120 changes the positions of the first local adjusted one and the linking ones with a maximum amplitude change. For example, all open correction points on the first local adjusted one in the perpendicular direction are moved together (linked) with the first local adjusted one. If the maximum amplitude change is not expected by the user, the user could continue to move the first local adjusted one to a reset position RP of the correction frame M, for example, a center of the frame edge MF; however, such exemplification is not meant to be for limiting. In response to the first local adjusted one being moved to the reset position RP, the processor 120 changes the form of the line segment S 1 .
- the processor 120 reduces the number of the linking ones that are moved together with the first open correction point CP 7 , 1 .
- the number of the linking ones that are moved together with the first open correction point CP 7 , 1 (the first local adjusted one) is reduced to two from six, and the curvature radius of the line segment S 1 is reduced (that is, the line segment S 1 is farther from the reset position RP), and then, as the first open correction points CP 7 , 1 approaches the reset position RP, the curvature radius of the line segment S 1 increases (that is, the line segment S 1 approaches the reset position RP) and the number of the linking ones increases.
- step S 195 the process directly proceeds to step S 195 from step S 192 .
- the user could input an end command of the local contour adjustment, through the aforementioned user interface, to end the local contour adjustment process. If the user wants to continue to perform the second (m th ) local contour adjustment, the process proceeds to step S 193 .
- step S 193 the processor 120 determines whether the local contour adjustment is completed. If the local contour adjustment is completed, the process proceeds to step S 195 ; if the local contour adjustment is not completed, the process proceeds to step S 194 .
- the value of m could range between 1 and M, wherein m is a positive integer, and M is a positive integer equal to or greater than 2.
- the embodiment of the present invention does not limit the value of M, which could be a positive integer between 2 and 100, or even more, and the value depends on the number of adjustments made by the user.
- step S 195 within the contour boundary line B 1 , the processor 120 could use a linear interpolation compensation method to establish a number of non-opened correction points, wherein the positions of the non-opened correction points are, for example, at the intersections of the grid-lines of FIG. 3 J .
- the “non-opened correction point” herein refers to the contour point that is not open to the user for position adjustment. So far, the correction for the correction frame M is completed.
- an embodiment of the present invention provides an frame correction method and a projector using the same, which could project a correction frame for the user to adjust the boundary contour and/or the local contour in the boundary of the correction frame to meet the (or conform to) the surface contour (for example, flat, curved surface or the combination thereof) of the projection surface (for example, wall surface, landscaping surface, advertising surface, screen, or any surface that could receive the projection of the projected image), thereby reducing the degree of distortion and distortion of the display content.
- the projection image from the projector according to the embodiment of the present invention is not excessively distorted resulted from the concave and convex contours of the projection surface.
- the user only needs to manually adjust n th contour-adjusted one, then the corresponding original-boundary contour point(s) and/or added-boundary contour point(s) is/are automatically adjusted, and at least one added-boundary contour point and at least one open correction point are automatically added.
- the user could manually adjust the position of the m th local adjusted one of the at least one open correction point, and the linking one associated with the m th local adjusted one is moved together with the movement of the m th local adjusted one.
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Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202210699188.8A CN117319613A (en) | 2022-06-20 | 2022-06-20 | Picture correction method and projector using the same |
| CN202210699188.8 | 2022-06-20 |
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| Publication Number | Publication Date |
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| US20230412781A1 US20230412781A1 (en) | 2023-12-21 |
| US12108196B2 true US12108196B2 (en) | 2024-10-01 |
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| US18/105,188 Active 2043-04-09 US12108196B2 (en) | 2022-06-20 | 2023-02-02 | Frame correction method and projector using the same |
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| CN (1) | CN117319613A (en) |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20140285725A1 (en) * | 2013-03-22 | 2014-09-25 | Seiko Epson Corporation | Image processing apparatus, projector, image processing method, and computer program |
| WO2015016596A1 (en) * | 2013-08-01 | 2015-02-05 | Cj Cgv Co., Ltd. | Image correction method and apparatus using creation of feature points |
| US20170180689A1 (en) * | 2015-12-22 | 2017-06-22 | Canon Kabushiki Kaisha | Multi-projector alignment refinement |
| WO2019195884A1 (en) * | 2018-04-10 | 2019-10-17 | Immersaview Pty Ltd | Image calibration for projected images |
| US20220303512A1 (en) * | 2021-03-22 | 2022-09-22 | Coretronic Corporation | Projection system and projection method |
-
2022
- 2022-06-20 CN CN202210699188.8A patent/CN117319613A/en active Pending
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- 2023-02-02 US US18/105,188 patent/US12108196B2/en active Active
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20140285725A1 (en) * | 2013-03-22 | 2014-09-25 | Seiko Epson Corporation | Image processing apparatus, projector, image processing method, and computer program |
| WO2015016596A1 (en) * | 2013-08-01 | 2015-02-05 | Cj Cgv Co., Ltd. | Image correction method and apparatus using creation of feature points |
| US20170180689A1 (en) * | 2015-12-22 | 2017-06-22 | Canon Kabushiki Kaisha | Multi-projector alignment refinement |
| WO2019195884A1 (en) * | 2018-04-10 | 2019-10-17 | Immersaview Pty Ltd | Image calibration for projected images |
| US20220303512A1 (en) * | 2021-03-22 | 2022-09-22 | Coretronic Corporation | Projection system and projection method |
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| Publication number | Publication date |
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| CN117319613A (en) | 2023-12-29 |
| US20230412781A1 (en) | 2023-12-21 |
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